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Geospatial Technology
GEOSPATIAL TECHNOLOGY INCLUDES three different technologies that are all related to mapping features on the surface of the Earth for environmental management. They are geographical information systems (GIS), global-positioning systems (GPS), and remote sensing (RS). This is also synonymous with spatial information technology. Together, the three components of geospatial technology can track, map, analyze, and disseminate environmental management information. RS technology helps survey the entire Earth with unprecedented regularity, thus any environmental change can be noticed. Global atmospheric conditions are monitored on an hourly basis by weather satellites. RS imagery provides information on drought, vegetation, flood damage, forest fires, deforestation, and other natural disasters. GIS provides the tools to accurately map this information in both global and local perspectives. GPS technology accurately tracks the position of environmental fallout.
Geospatial information technology can play a vital role in global warming research by helping to make a connection between climate change and individual people. It is best achieved by mapping the impact of climate change at the local level through the use of satellite imagery. Thus, the public will be aware of the actual impact of global warming. Through the use of Web GIS, a virtual globe can be created and presented with environmental change information such as atmospheric, societal, and ecological changes occurring around the world. Virtual globes are a new medium for conveying information; one example available to the public is through Google Earth and Map.
Geospatial technology provides resource managers, as well as general public, with the insight and ability to react to climate change. One can monitor, map, and share the effects of: El Nino Ocean warming and La Nina ocean cooling; tropical forest depletion; the melt-down of sea glaciers in Antarctica or at the poles; vegetation monitoring through detailed knowledge of soils, erosions rates, nutrient cycles, and local agricultural practices; and water resources management through weather monitoring. With GIS, the global temperature pattern is mapped and shared among users. Researchers are using geospatial technology to quantify the carbon amount in biomass and using that information in carbon sequestration. Researchers at The Massachusetts Institute of Technology (MIT) with ESRI software have developed a Carbon Management Geographic Information System for the United States in order to capture, integrate, manipulate, and interpret data relevant to CO2 capture and sequestration. Precipitation and rainfall pattern changes are consequences of global warming. These patterns are mapped and analyzed locally and globally.
One way geospatial technology can help make individuals more aware of the impact of climate change is via satellite imagery.

Geospatial technology helps in understanding and mapping the patterns of vulnerability with planning climate adaptation strategies. Vulnerability analysis, or the degree to which people or the environment may be harmed, requires integrating three types of information about society and environment interactions, including: patterns of exposure to hazards, sensitivity, and resilience. Sensitivity includes the amount of damage expected from a particular event such as coastal flooding, a hurricane, or an excessive heat wave; and resilience includes the capacity to recover from the vagaries of climate change. Researchers use the spatial information technology to prepare society to withstand the challenges. Hotspot identification and analysis is a prime tool of geographic information sciences. Through geospatial technology use, governments can identify factors and hotspots responsible for global warming and climate change and locate areas affected by them. Governments can then act accordingly to save vulnerable populations. Thus, the use of geospatial technology can help in mitigating global warming problems and aftereffects.
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- Atmospheric Sciences
- Aerosols
- Anticyclones
- Atmospheric Absorption of Solar Radiation
- Atmospheric Boundary Layer
- Atmospheric Composition
- Atmospheric Emission of Infrared Radiation
- Atmospheric General Circulation Models
- Clouds, Cirrus
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- Condensation
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- Evolution of the Atmosphere
- Hadley Circulation
- Heat, Latent
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- Hurricanes and Typhoons
- Hydrological Cycle
- Intertropical Convergence Zone
- Jet Streams
- Mesosphere
- Monsoons
- Precipitation
- Radiation, Absorption
- Radiation, Infrared
- Radiation, Long Wave
- Radiation, Microwave
- Radiation, Short Wave
- Radiation, Ultraviolet
- Rain
- Stratosphere
- Thermosphere
- Thunderstorms
- Trade Winds
- Troposphere
- Walker Circulation
- Waves, Gravity
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- Climate
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- Climatic Data, Tree Ring Records
- Detection of Climate Changes
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- Validation of Climate Models
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- Colorado Climate Center
- Cooperative Institute for Arctic Research
- Cornell University
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- Department of Energy, U.S.
- Desert Research Institute
- Edison Electric Institute
- Environmental and Societal Impacts Group
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- Environmental Financial Products, LLC
- Environmental Protection Agency (EPA)
- European Commission
- FEEM (Italy)
- Florida State University
- Foundation for International Environmental Law and Development
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- Geophysical Fluid Dynamics Laboratory
- Global Atmospheric Research Program (GARP)
- Global Environment Facility (GEF)
- Global Industrial and Social Progress Research Institute (GISPRI)
- Greenpeace International
- Harvard University
- Heinz Center
- Idaho State Climate Services
- Indiana University
- Institute of Energy Economics (Argentina)
- Intergovernmental Panel on Climate Change (IPCC)
- International Council of Scientific Unions (ICSU)
- International Energy Agency (IEA)
- International Institute for Sustainable Development (IISD)
- International Research Institute for Climate Prediction
- International Solar Energy Society (ISES)
- International Union of Geodesy and Geophysics (IUGG)
- Joint Institute for the Study of the Atmosphere and Ocean (JISAO)
- Kyoto Mechanisms
- LDEO Climate Modeling Group
- Marshall Institute
- Midwestern Regional Climate Center
- National Academy of Sciences, U.S.
- National Association of Energy Service Companies (NAESCO)
- National Center for Atmospheric Research (NCAR)
- Natsource
- Natural Resources Defense Council (NRDC)
- New Mexico Climate Center
- OECD Annex 1 Expert Group on the UNFCCC
- OECD Climate Change Documents
- Ohio State University
- Oregon Climate Service
- Oregon State University
- Organisation for Economic Co-operation and Development (OECD)
- Penn State University
- Pew Center on Global Climate Change
- Renewable Energy Policy Project (REPP)
- Resources for the Future (RFF)
- Royal Dutch/Shell Group
- Royal Meteorological Society
- Scripps Institute of Oceanography
- Solar Energy Industries Association (SEIA)
- Stockholm Environment Institute (SEI)
- Tata Energy Research Institute (TERI)
- Trexler and Associates, Inc.
- UN Conference on Trade and Development/Earth Council Institute: Carbon Market Program
- United Nations Development Programme (UNDP)
- United Nations Environment Programme (UNEP)
- University Corporation for Atmospheric Research
- University Corporation for Atmospheric Research Joint Office for Science Support
- University of Arizona
- University of Birmingham, Meteorology and Climatology Department
- University of California
- University of Colorado
- University of Delaware, Center for Climatic Research
- University of Florida
- University of Hawaii, School of Ocean and Earth Science and Technology
- University of Illinois, Department of Atmospheric Sciences
- University of Kentucky, Agricultural Weather Center
- University of Leeds, Institute for Atmospheric Science
- University of Maine, Institute for Quaternary Studies
- University of Maryland, Department of Meteorology
- University of Miami
- University of Michigan
- University of New Hampshire
- University of Oklahoma, Weather Radar
- University of Reading, Department of Meteorology
- University of Utah, Department of Meteorology
- University of Washington, Atmospheric Science Department
- Utah Climate Center
- Weather World 2010 Project
- Western Regional Climate Center
- Woods Hole Oceanographie Institute
- World Bank
- World Business Council for Sustainable Development
- World Meteorological Organization
- World Resources Institute
- World Wildlife Fund
- Worldwatch Institute
- Oceanography
- Agulhas Current
- Antarctic Circumpolar Current
- Arctic Ocean
- Atlantic Ocean
- Benguela Current
- Current
- Ekman Layer
- Equatorial Undercurrent
- Gulf Stream
- Indian Ocean
- Kuroshio Current
- Meridional Overturning Circulation
- Mixed Layer
- Modeling of Ocean Circulation
- Pacific Ocean
- Peruvian Current
- Salinity
- Seawater, Composition of
- Somali Current
- Southern Ocean
- Thermocline
- Thermohaline Circulation
- Upwelling, Coastal
- Upwelling, Equatorial
- Western Boundary Currents
- Wind-Driven Circulation
- Paleoclimates
- Cenozoic Era
- Cretaceous Era
- Earth's Climate History
- Greenland Cores
- Holocene Era
- Jurassic Era
- Mesozoic Era
- Milankovitch Cycles
- Orbital Parameters, Eccentricity
- Orbital Parameters, Obliquity
- Orbital Parameters, Precession
- Paleozoic Era
- Pleistocene Era
- Pliocene Era
- Precambrian Era
- Quaternary Era
- Tertiary Climate
- Triassic Period
- Vostok Core
- Younger Dryas
- People
- Arakawa, Akio
- Arrhenius, Svante August
- Bolin, Bert
- Broecker, Wallace
- Bryan, Kirk
- Bryson, Reid
- Budyko, Mikhail
- Chamberlin, Thomas C.
- Charney, Jule Gregory
- Croll, James
- Fourier, Joseph
- Gore, Albert, Jr.
- Hadley, George
- Hansen, James
- Keeling, Charles David
- Lindzen, Richard
- Lorenz, Edward
- Manabe, Syukuro
- Milankovitch, Milutin
- Munk, Walter
- Phillips, Norman
- Revelle, Roger
- Richardson, Lewis Fry
- Rossby, Carl-Gustav
- Schneider, Stephen H.
- Singer, S. Fred
- Smagorinsky, Joseph
- Stommel, Henry
- Sverdrup, Harald Ulrik
- Tyndall, John
- Von Neumann, John
- Walker, Gilbert
- Washington, Warren
- Programs and Conventions
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